Matches in SemOpenAlex for { <https://semopenalex.org/work/W3137424356> ?p ?o ?g. }
Showing items 1 to 67 of
67
with 100 items per page.
- W3137424356 abstract "Solid Rocket Motors (SRMs) can display self-sustained acoustic oscillations driven by coupling between hydrodynamic instabilities of the internal flow and longitudinal acoustic standing waves. The hydrodynamic instabilities are triggered by the acoustic standing wave and results in the formation of coherent vortical structures. For nominal ranges of flow conditions the sound waves generated by the interaction between these vortices and the choked nozzle at the end of the combustion chamber reinforces the acoustic oscillation. Most available literature on this subject focuses on the threshold of instability using a linear model. The focus of this work is on the prediction of the limit-cycle amplitude. The limit-cycle is reached due to nonlinear saturation of the source, as a consequence of the formation of large coherent vortical structures. In this case the vortex-nozzle interaction becomes insensitive to the amplitude of the acoustic standing wave. Hence, one can focus on the sound generation of a vortex with the nozzle. Sound production can be predicted from an analytical two-dimensional planar incompressible frictionless model using the so-called Vortex Sound Theory. In this model the vorticity is assumed to be concentrated in a line vortex. Experiments indicate that the volume of cavities around so-called “integrated nozzles” have a large influence on the pulsation amplitude for large SRMs. This is due to the acoustical field normal to the vortex trajectory, induced by the compressibility of the gas in this cavity. As an alternative to the incompressible analytical model a compressible frictionless model with an internal Euler Aeroacoustic (EIA) flow solver is used for simulations of vortex-nozzle interaction. A dedicated numerical simulation study focusing on elementary processes such as vortex-nozzle and entropy spot-nozzle interaction allows a systematic variation of relevant parameters and yields insight which would be difficult by means of limit cycle studies of the full engine. A systematic study of the vortex-nozzle interaction in the case of a choked nozzle has been undertaken. The results are summarized by using a lumped element model for plane wave propagation, which is based on theoretical scaling laws. From EIA simulations it appears that sound due to vortex-nozzle interaction is mainly generated during the approach phase and that for the relevant parameter range there is no impingement of the vortex on the nozzle wall as has been suggested in the literature. Using an energy balance approach, a single fit-parameter model is formulated which qualitatively predicts limit-cycle observations in cold gas-scale experiments reported in the literature. Finally the Euler model is used to compare the sound production by vortex-nozzle interaction with that due to the ingestion of an entropy non-uniformity also called entropy spot. In addition to insight, this study provides a systematic procedure to develop a lumped element model for the sound source due to non-homogeneous flow-nozzle interactions in SRMs. Such lumped models based on experimental data or a limited number of flow simulations can be used to ease the design of SRMs." @default.
- W3137424356 created "2021-03-29" @default.
- W3137424356 creator A5067748740 @default.
- W3137424356 date "2020-08-10" @default.
- W3137424356 modified "2023-09-26" @default.
- W3137424356 title "Low order modeling of vortex driven self-sustained pressure pulsations in solid rocket motors" @default.
- W3137424356 doi "https://doi.org/10.35294/phdt201905" @default.
- W3137424356 hasPublicationYear "2020" @default.
- W3137424356 type Work @default.
- W3137424356 sameAs 3137424356 @default.
- W3137424356 citedByCount "0" @default.
- W3137424356 crossrefType "dissertation" @default.
- W3137424356 hasAuthorship W3137424356A5067748740 @default.
- W3137424356 hasBestOaLocation W31374243562 @default.
- W3137424356 hasConcept C10138342 @default.
- W3137424356 hasConcept C102019270 @default.
- W3137424356 hasConcept C121332964 @default.
- W3137424356 hasConcept C127413603 @default.
- W3137424356 hasConcept C140820882 @default.
- W3137424356 hasConcept C146978453 @default.
- W3137424356 hasConcept C154945302 @default.
- W3137424356 hasConcept C162324750 @default.
- W3137424356 hasConcept C182306322 @default.
- W3137424356 hasConcept C187878255 @default.
- W3137424356 hasConcept C192562407 @default.
- W3137424356 hasConcept C2775924081 @default.
- W3137424356 hasConcept C41008148 @default.
- W3137424356 hasConcept C47446073 @default.
- W3137424356 hasConcept C57879066 @default.
- W3137424356 hasConcept C76737569 @default.
- W3137424356 hasConceptScore W3137424356C10138342 @default.
- W3137424356 hasConceptScore W3137424356C102019270 @default.
- W3137424356 hasConceptScore W3137424356C121332964 @default.
- W3137424356 hasConceptScore W3137424356C127413603 @default.
- W3137424356 hasConceptScore W3137424356C140820882 @default.
- W3137424356 hasConceptScore W3137424356C146978453 @default.
- W3137424356 hasConceptScore W3137424356C154945302 @default.
- W3137424356 hasConceptScore W3137424356C162324750 @default.
- W3137424356 hasConceptScore W3137424356C182306322 @default.
- W3137424356 hasConceptScore W3137424356C187878255 @default.
- W3137424356 hasConceptScore W3137424356C192562407 @default.
- W3137424356 hasConceptScore W3137424356C2775924081 @default.
- W3137424356 hasConceptScore W3137424356C41008148 @default.
- W3137424356 hasConceptScore W3137424356C47446073 @default.
- W3137424356 hasConceptScore W3137424356C57879066 @default.
- W3137424356 hasConceptScore W3137424356C76737569 @default.
- W3137424356 hasLocation W31374243561 @default.
- W3137424356 hasLocation W31374243562 @default.
- W3137424356 hasLocation W31374243563 @default.
- W3137424356 hasLocation W31374243564 @default.
- W3137424356 hasLocation W31374243565 @default.
- W3137424356 hasOpenAccess W3137424356 @default.
- W3137424356 hasPrimaryLocation W31374243561 @default.
- W3137424356 hasRelatedWork W1959907322 @default.
- W3137424356 hasRelatedWork W1990196853 @default.
- W3137424356 hasRelatedWork W2063078842 @default.
- W3137424356 hasRelatedWork W2139911387 @default.
- W3137424356 hasRelatedWork W2377854454 @default.
- W3137424356 hasRelatedWork W2390978181 @default.
- W3137424356 hasRelatedWork W2412344664 @default.
- W3137424356 hasRelatedWork W4353086499 @default.
- W3137424356 hasRelatedWork W2184964939 @default.
- W3137424356 hasRelatedWork W312731424 @default.
- W3137424356 isParatext "false" @default.
- W3137424356 isRetracted "false" @default.
- W3137424356 magId "3137424356" @default.
- W3137424356 workType "dissertation" @default.